Heat pump control system and method of operating to provide automatic backup heating modes
Summary by NHIP
Automatic Heat Source Backup
The method operates a heating system by automatically switching between a primary heat source and a secondary source when the primary fails to meet space requirements. The system re-energizes the primary source if the secondary source subsequently fails, utilizing a pressure limit switch to de-energize the heat pump if fluid pressure falls outside a predetermined range.
Claim Score by NHIP
Abstract
A heat pump type heating and air conditioning system includes a gas furnace or other auxiliary heat source and a thermostat and controller associated with the heat pump and the auxiliary heat source for automatically energizing the heat pump if the auxiliary heat source is inoperative regardless of whether or not the automatic heating mode has been selected or the auxiliary heating mode has been selected by the user of the system. A method of operating a heat pump system with an auxiliary heating source to automatically change from operation of the heat pump to the auxiliary heating source depending on conditions such as outdoor temperature, and to automatically change back to operation of the heat pump if the auxiliary heating source is inoperable.

Term
Term ended
Expired 31 January 2025, 1.6 years ago.
- Priority and filed
- Granted
- Expired
- Today
21 claims: 3 independent, 18 dependent
- 1A method for operating a heating system when a second heat source fails to supply sufficient heat, comprising the steps of:providing a heating system having a first and a second heat source;connecting the heating system to a space of a residential dwelling or commercial building to provide heat thereto;energizing the first heat source at a first call for heating said space;judging whether the first heat source is unable to provide the heating requirements of the space;deenergizing the first heat source and energizing the second heat source if said first heat source is unable to provide the heating requirements of said space;judging whether the second heat source failed to supply sufficient heat to the space;providing a signal indicating failure of said second heat source to provide sufficient heat to said space;and re-energizing said first heat source in response to the signal indicating failure of the second heat source to provide sufficient heat for the space.
- 9Broadest claimClaim Score 58, broad(NHIP)A method for operating a heating system comprising the steps of:providing a heating system including a heat pump and an auxiliary heat source, a thermostat including a sensor for sensing the temperature in an enclosed space to be heated by said heating system, said thermostat including a heating mode selection switch including a heat mode position and an auxiliary or emergency heat mode position, and a controller operably connected to said thermostat and to said heating system;responding to a call for heat from said thermostat by determining the position of said selection switch and responding to said selection switch being at said heat position to energize said heat pump;deenergizing said heat pump if the demand for heat provided by said heat pump is not satisfied;energizing said auxiliary heat source and determining if said auxiliary heat source is operable;and deenergizing said auxiliary heat source and energizing said heat pump if said auxiliary heat source is one of inoperable and failing to satisfy the heating demand of said space.
- 17A method for operating a heating system comprising the steps of:providing a heating system including a heat pump and an auxiliary heat source, a thermostat including a sensor for sensing the temperature in an enclosed space to be heated by said heating system, said thermostat including a heating mode selection switch including a heat mode position and an auxiliary or emergency heat mode position, and a controller operably connected to said thermostat and to said heating system responding to a call for heat from said thermostat by determining the position of said selection switch and responding to said selection switch being at said auxiliary or emergency heat position to energize said auxiliary heat source;monitoring selected operating parameters of said auxiliary heat source to determine if said auxiliary heat source is operable;and deenergizing said auxiliary heat source and energizing said heat pump if said auxiliary heat source is one of inoperable and failing to satisfy the heating demand of said space.
Independent claims3
29 paragraphs in 4 sections, as filed
BACKGROUND
0001Heat pump systems for residential and commercial applications often include independent auxiliary heating sources to provide heat when the system load is greater than can be satisfied by operation of the heat pump alone. Heat pump systems are often provided with fossil fuel auxiliary heating sources or furnaces, although electric resistance grid heaters or other sources may also serve as auxiliary or backup heaters. Typically, heat pump systems with auxiliary heat sources are operated such that the fossil fuel or electric backup heater and the heat pump are not operated at the same time to avoid placing excess thermal stresses on the heat pump part of the system.
0002Moreover, conventional heat pump systems are usually manufactured and shipped to the end user with a controller, including a thermostat. If a fossil fuel or electric resistance heater is installed later, an additional control device and associated wiring must be provided to modify control of the system to allow the heat pump and the auxiliary heat source or furnace to work together. It is desirable to eliminate such an additional control device, the wiring associated therewith and the effort to install the device when a heat pump system is modified to include an auxiliary or backup heat source, such as a fossil fuel furnace, electric resistance heater or other source of auxiliary heat.
0003Moreover, in certain instances the auxiliary or backup source of heat may fail to operate properly. With conventional prior art systems, the heat pump is not called on to restart to provide whatever heat it is capable of providing. Thus, in such prior art systems there is complete failure to provide heat, even though the heat pump portion of the system is operable to provide at least enough heat to prevent substantial discomfort to the occupants of the space to be heated or prevent a more catastrophic event. It is to overcome deficiencies of prior art heat pump systems with auxiliary heat sources that the present invention has been developed.
SUMMARY OF THE INVENTION
0004The present invention provides a heat pump system which includes an auxiliary heating source with an improved control arrangement and method which will provide for automatic operation of the heat pump in the event that the auxiliary heat source fails to operate.
0005In accordance with one aspect of the present invention, a control system for a heat pump with auxiliary heating is provided which, in a normal mode of operation, provides for operation of the heat pump to satisfy the heat requirement. If the heat pump alone cannot satisfy the heat requirement, the control system deenergizes the heat pump and energizes the auxiliary heating source, such as a gas or other fossil fuel furnace or other type of auxiliary or backup heat source. In accordance with the present invention, if the auxiliary heat source is not operative, the system automatically returns to operation of the heat pump to satisfy, at least partially, the demand of the space being heated. The system and method of the invention also provide for automatic operation of an auxiliary or backup heat source if the heat pump fails to provide sufficient heat to the controlled space.
0006Still further, the control system and method of the invention are operable to provide for restarting a heat pump if the auxiliary or backup heat source fails, even if user settable controls for the system have been manually set to the auxiliary heating mode.
0007Still further, the system and method of the invention provide for using a signal from a high pressure switch of a heat pump in place of a high temperature limit switch in the system.
0008Those skilled in the art will further appreciate the above mentioned advantages and superior features of the invention, together with other important aspects thereof, upon reading the detailed description which follows in conjunction with the drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
0009<figref idref="DRAWINGS">FIG. 1</figref> is a schematic diagram of a heat pump system with an auxiliary heating source and including a thermostat and control system in accordance with the present invention; and
0010<figref idref="DRAWINGS">FIGS. 2A and 2B</figref> comprise a flow diagram illustrating certain operating steps in accordance with a method of the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
0011In the description which follows, certain elements may be described generally and shown in schematic form in the interest of clarity and conciseness.
0012Referring to <figref idref="DRAWINGS">FIG. 1</figref>, there is illustrated a schematic diagram of a heat pump system with an auxiliary heating source comprising a fossil fuel furnace and generally of the type used for residential dwelling air conditioning purposes. The system shown in <figref idref="DRAWINGS">FIG. 1</figref> comprises an air conditioning system <b>10</b> characterized by a cabinet <b>12</b> in which a motor driven blower or fan <b>14</b> is disposed for circulating air to and from an enclosed space <b>16</b> in a conventional manner. The system <b>10</b> includes a heat pump <b>18</b> characterized by a reversible vapor compression fluid flow circuit including a first heat exchanger <b>20</b> disposed within the cabinet <b>12</b> and a second heat exchanger <b>22</b>, typically an outdoor air cooled type condenser unit, for example. The heat exchangers <b>20</b> and <b>22</b> are disposed in a closed fluid flow circuit including a motor driven compressor <b>24</b>, a circuit flow reversing valve <b>26</b> and circuitry, as shown, for circulating a refrigerant fluid through the heat exchangers <b>20</b> and <b>22</b>. Certain conventional components, such as expansion devices and check valves for proper circulation of the refrigerant fluid, have been omitted from the schematic diagram of <figref idref="DRAWINGS">FIG. 1</figref>.
0013The heat pump <b>18</b> typically includes a high pressure/low pressure limit switch <b>28</b> interposed in the refrigerant fluid circuit to provide a signal to a controller <b>30</b> indicating excessive fluid pressure in the refrigerant circuit or inadequate pressure in the refrigerant circuit. The air conditioning system <b>10</b> may also include a high temperature limit switch <b>32</b> disposed in the cabinet <b>12</b> and operably connected to the controller <b>30</b>. The controller <b>30</b> may be integrated with a so-called thermostat device <b>34</b> disposed in the enclosed space <b>16</b> and having a temperature sensor <b>36</b> for sensing temperature in the enclosed space. Thermostat device <b>34</b> may include an outdoor ambient air temperature sensor <b>38</b> also. The thermostat part of the controller <b>30</b> may also include a multi-position switch <b>40</b> whereby the user of the system <b>10</b> may select a heating mode, an off mode, a cooling mode, and an auxiliary or an emergency heating mode, as indicated, and known to those skilled in the art.
0014The thermostat/controller <b>30</b>/<b>34</b> is operable, upon selection of the operating mode by the user of this system <b>10</b>, to provide heat to the space <b>16</b> when the temperature in the space <b>16</b> decreases to a certain point below a setpoint of the thermostat sensor <b>36</b>, which setpoint may be selected also by a user of the system <b>10</b>. In many applications of heat pump systems, an auxiliary heat source must be included in the system to satisfy the heating demand requirements under climatic conditions or other operating conditions which cannot be satisfied by the heat pump itself. In the system <b>10</b>, for example, an auxiliary heat source in the form of a gas furnace <b>42</b> is disposed in the cabinet <b>12</b> and is operable to provide heat to satisfy the demand of the enclosed space <b>16</b> in operating conditions under which the heat pump <b>18</b> cannot satisfy such demand. The auxiliary heat source or furnace <b>42</b> includes a fossil fuel (gas) burner <b>44</b> connected to a source of fuel by way of a remotely controllable valve <b>46</b> operably connected to the controller/thermostat <b>30</b>/<b>34</b>. Other forms of auxiliary heat sources may be used including electric resistance grid furnaces, steam heaters and the like, not shown.
0015Accordingly, the controller/thermostat <b>30</b>/<b>34</b> may be provided with a manual signal input by a user of the system <b>10</b> by selecting the “EM HEAT” setting of the switch <b>40</b> (which may also be indicated as auxiliary heat) if the user is aware that the heat pump <b>18</b> will not satisfy the heating demand. Otherwise, the user of the system <b>18</b> would normally place the switch <b>40</b> in the “HEAT” position to allow the system to operate in a mode which typically would operate the heat pump <b>18</b> to satisfy the heating requirements of the space <b>16</b> and, if the heat pump was unable to do so, deenergize or shut down the heat pump <b>18</b> and commence operation of the auxiliary heat source or furnace <b>42</b>.
0016However, in conventional heat pump systems with auxiliary heating sources, if the auxiliary heating source fails or cannot satisfy the demand of the space <b>16</b>, the heat pump <b>18</b> will not restart to provide whatever output it is capable of providing. Clearly, it would be desirable in many situations to provide for this mode of operation. For example, in residential dwelling applications of the system <b>10</b>, if the auxiliary heat source failed to operate it would be desirable to utilize whatever heat output the heat pump <b>18</b> was capable of to prevent the temperature in the space <b>16</b> from dropping below a point of extreme discomfort for the occupants of the space or to a temperature which might result in damage to the dwelling or its contents.
0017The present invention provides a controller/thermostat <b>30</b>/<b>34</b> which is operable to cause the system <b>10</b> to divert to operation of the heat pump <b>18</b> if the auxiliary heating source, such as the gas furnace <b>42</b>, fails to operate or fails to satisfy the demand of the space <b>16</b> whether or not the switch <b>40</b> is placed in the auxiliary heat operating mode “EM HEAT” or the more automatic “HEAT” operating mode. The controller/thermostat <b>30</b>/<b>34</b> may include a programmable or preprogrammed control circuit which is operably connected to the heat pump <b>18</b> and to the auxiliary heat source <b>42</b> to accomplish these ends. The control circuit within the controller/thermostat <b>30</b>/<b>34</b> may comprise a programmable microcontroller of a type commercially available and which may be programmed by one of ordinary skill in the art to carry out the method of the invention.
0018Referring to <figref idref="DRAWINGS">FIG. 2A</figref>, there is illustrated a somewhat simplified flow diagram in accordance with the system and method of the invention. <figref idref="DRAWINGS">FIG. 2B</figref> is a continuation of the flow diagram shown in <figref idref="DRAWINGS">FIG. 2A</figref>. Certain routine steps normally included in operation of a combustion or fossil fuel furnace have been omitted in the interest of conciseness. However, the steps which include methodology in accordance with the present invention are indicated in the diagram. The letters Y and N designate “yes” and “no”, respectively. The general methodology of the invention provides for operation of the system <b>10</b> by the controller/thermostat <b>30</b>/<b>34</b> in the following modes. If the operator or user of this system <b>10</b> has selected the “HEAT” position of the switch <b>40</b>, when the temperature sensor <b>36</b> indicates a temperature at or slightly below the setpoint, a call for heat is indicated at step <b>50</b>.
0019The process first identifies the thermostat setting of switch <b>40</b> for the respective heating modes of the system <b>10</b>, as indicated at steps <b>52</b> and <b>54</b>. If the switch <b>40</b> is set at “HEAT,” the process next queries the thermostat <b>34</b> at step <b>55</b> to determine if the outdoor temperature sensed by sensor <b>38</b> is suitable to provide heat from the heat pump <b>18</b>. If the controller <b>30</b> determines that operating conditions are suitable for heat pump operation, the heat pump <b>18</b> will be energized at step <b>56</b> to supply heat to the space <b>16</b> and as long as that mode of operation satisfies the heat requirements of the space <b>16</b> in accordance with the thermostat setting, system operation will be carried out using the heat pump operating mode only. Typically, a timer is set at step <b>58</b>. If the heating demand is satisfied at or before timeout of the timer setting, then the system returns to the start condition, see step <b>60</b>.
0020However, if the heat pump <b>18</b> is unable to satisfy the demand of the space <b>16</b> in accordance with the setpoint of the thermostat <b>34</b>, at a predetermined time after the call for heat, such as fifteen minutes to thirty minutes, if the temperature sensed is at or below a temperature less than the setpoint, such as 2° F. to 3<b>20</b> F., for example, the heat pump <b>18</b> will be shutoff at step <b>62</b> and the auxiliary heat source <b>42</b> will be energized at step <b>64</b>. The heat pump <b>18</b> is normally deenergized to prevent excessive thermal stresses on the heat exchanger <b>20</b>, for example.
0021Operation of the heat pump <b>18</b> may be bypassed at step <b>55</b> to operation of the auxiliary heating source <b>42</b> automatically if, for example, the outside temperature sensor <b>38</b> indicates that the heat pump will be unable to meet the demand of the space <b>16</b>, as determined by controller <b>30</b>, or other conditions are so extreme that the heat pump will not be able to operate properly in the heating mode.
0022Referring further to <figref idref="DRAWINGS">FIGS. 2A and 2B</figref>, upon energization of the auxiliary heat source <b>42</b> at step <b>64</b>, if the controller <b>30</b> determines that the auxiliary heat source <b>42</b> is functioning at step <b>65</b>, <figref idref="DRAWINGS">FIG. 2B</figref>, the process flow may continue via the path indicated by the connection comprising the encircled A. Signals from the gas valve <b>46</b> and/or the temperature sensor/limit switch <b>32</b>, for example, may be input to the controller <b>30</b> to indicate whether or not the auxiliary heat source <b>42</b> is functioning. A timer may be set at step <b>66</b>, <figref idref="DRAWINGS">FIG. 2A</figref>. If the heating demand of the space <b>16</b> is satisfied at or before timeout of the timing function set at step <b>66</b>, see step <b>67</b>, operation of the system will be such as to deenergize the auxiliary heat source and return the process to the beginning as indicated by the flow line connected by the encircled B.
0023However, if the heating demand is not being satisfied at step <b>67</b>, <figref idref="DRAWINGS">FIG. 2A</figref>, the controller <b>30</b> will deenergize the auxiliary heat source at step <b>68</b> and energize the heat pump <b>18</b> at step <b>70</b>. Moreover, if the auxiliary heat source <b>42</b> is not functioning at step <b>65</b>, it is deenergized at step <b>72</b> and the heat pump <b>18</b> is energized at step <b>74</b> to attempt to satisfy the demand for heat called by the thermostat <b>34</b>. In this way, the space <b>16</b> may be kept at a temperature which will avoid extreme discomfort of occupants of the space or at least prevent major damage to facilities defining the space <b>16</b>. However, if the heat pump <b>18</b> satisfies the heating demand at step <b>76</b>, the heat pump <b>18</b> is deenergized at step <b>77</b> and the process reverts to the starting condition.
0024Alternatively, the process indicated in <figref idref="DRAWINGS">FIGS. 2A and 2B</figref> may provide for operation of the heat pump <b>18</b> and the auxiliary heat source <b>42</b> simultaneously if a limit temperature is not exceeded in the cabinet <b>12</b> as sensed by a sensor in limit switch <b>32</b> or by a pressure sensor in pressure switch <b>28</b>, for example. Thus, the heating demand for the space <b>16</b> may be satisfied by the combination of heat sources, such as the heat pump <b>18</b> and the auxiliary source <b>42</b>. Moreover, if either one of the heat sources fails, the other one may be commanded to continue operating until the call for heat is terminated by the thermostat <b>34</b>.
0025Referring to <figref idref="DRAWINGS">FIG. 2B</figref>, if the heating demand is not satisfied at step <b>76</b>, the heat pump continues to operate at step <b>78</b> and an attempt is made to start the auxiliary heat source <b>42</b> at step <b>80</b>. If the auxiliary heat source <b>42</b> starts functioning at step <b>82</b>, the high temperature and high pressure limit switches <b>32</b> and <b>28</b> are monitored at step <b>84</b> and, if the temperature in the system, as indicated by either, is too high, step <b>86</b>, the heat pump is deenergized at step <b>88</b> and the process is reentered at the encircled letter A. If the auxiliary heat source is not functioning at step <b>82</b>, the heat pump <b>18</b> continues to operate at step <b>83</b> and the process continues from the encircled letter C. A suitable time delay may be built into the process at step <b>76</b> to prevent rapid repetitious attempts to start the heat source <b>42</b>.
0026Referring again to <figref idref="DRAWINGS">FIG. 2A</figref>, if the user of the space <b>16</b> has set the selector switch <b>40</b> at emergency or auxiliary heat (EM HEAT), as indicated at step <b>52</b>, then at the call for heat the auxiliary heat source <b>42</b> is energized at step <b>90</b> and a determination is made at step <b>92</b> as to whether or not heat source <b>42</b> is functioning. If heat source <b>42</b> is functioning the timer is set at step <b>66</b>. Again, if the heating demand is satisfied at step <b>67</b> before the time set by the timer has elapsed, the system will return to the “Start” mode as indicated in <figref idref="DRAWINGS">FIG. 2A</figref>. However, if the heat source <b>42</b> is not functioning at step <b>92</b>, it is deenergized at step <b>94</b> and the heat pump <b>18</b> is energized at step <b>96</b> and the process continues at the encircled letter C in <figref idref="DRAWINGS">FIG. 2B</figref>.
0027Still further, in place of setting a timer and monitoring the heating demand condition at timeout of the timer, as indicated in steps <b>58</b> and <b>60</b> and steps <b>66</b> and <b>67</b>, the temperature sensed by the sensor <b>36</b> may be monitored by the controller <b>30</b> while the auxiliary heating source <b>42</b> is operable to determine if there is any failure of the auxiliary source to begin to meet or continue to meet the demand of the space <b>16</b>. Accordingly, in this alternative mode of operation, if the rate of rise of the temperature in the space <b>16</b> as sensed by sensor <b>36</b> is less than a predetermined amount, this parameter may be used to deenergize the auxiliary heat source <b>42</b> and energize the heat pump <b>18</b> in an effort to satisfy the heating demand of the system.
0028Accordingly, a controller/thermostat in accordance with the present invention may be an integrated unit in which essentially all of the control functions which require calling for heat and operating a heat pump and/or an auxiliary heat source may be provided in accordance with the invention and installed on all heat pump units manufactured and sold by an entity. In this way, if a system is sold without an auxiliary heat source but that source is added later, then a thermostat/controller in accordance with the invention will be operable to provide the method of the present invention without the addition of further control devices and associated wiring. Of course, if a system, such as the system <b>10</b>, is produced initially with an auxiliary heat source, then a thermostat and controller in accordance with the invention will be operable to provide the operating method of the invention straight away.
0029A system, such as the system <b>10</b>, may be provided by those of ordinary skill in the art using conventional components. A thermostat and/or controller in accordance with the invention may also be provided using programmable circuitry commercially available and programmed to operate in accordance with the method of the invention. Although preferred embodiments of the invention have been described in detail herein, those skilled in the art will also recognize that various substitutions and modifications may be made without departing from the scope and spirit of the appended claims.
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Numbers
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- 10755579
- Application, DOCDB
- 75557904
- Application, EPODOC
- US20040755579
Titles
- English
- Heat pump control system and method of operating to provide automatic backup heating modes
Patent term adjustment
- A delay
- +531 daysthe office missed an examination deadline
- Applicant delay
- −146 days
- Net adjustment
- 385 days
Classification
- CPC, 10
- F25B30/02
- F24D12/02
- F24D2200/04
- F24D2200/08
- F24D2200/12
- F25B13/00
- F25B2700/193
- F25B2700/2104
- F25B2700/2106
- Y02B30/00
- IPC, 4
- F25B29 00
- F24D12 02
- F25B13 00
- F25B30 02
- USPC, 11
- 165240000
- 062160000
- 062238600
- 062238700
- 165241000
- 165242000
- 23700200A
- 23700200B
- 431019000
- 431024000
- 431025000